Synthetic Methodologies and Structural Engineering of Biomass‐Derived Adsorbents for CO 2 Capture

ABSTRACT Developing sustainable, scalable, low‐cost adsorbents constitutes a core prerequisite to realize practically viable CO 2 capture technologies. Biomass‐derived porous carbons represent attractive candidate sorbents owing to renewable raw feedstocks, tailorable pore architecture, intrinsic hydrophobic character, and moderate regeneration energy demand. This review adopts a methodology‐ and engineering‐driven perspective to examine rational design principles, scalable fabrication routes, and structural engineering strategies of biomass‐derived adsorbents for high‐efficiency CO 2 capture. Material‐level links between manufacturing pathways, physicochemical features, and resultant CO 2 adsorption performance are critically analyzed, covering a broad suite of carbonization, activation, and surface‐modification approaches. Beyond material characteristics, engineering‐relevant aspects are addressed, including pelletization of powdered sorbents, reactor configuration, and practical implementation within PSA (pressure swing adsorption), VSA (vacuum swing adsorption), and TSA (temperature swing adsorption) cyclic adsorption workflows for industrial‐scale deployment. Key existing bottlenecks are outlined, such as lack of standardized synthesis workflows, insufficient anti‐contamination performance, barriers for large‐scale manufacturing, and absence of unified performance‐assessment benchmarks. Corresponding future research avenues are suggested to promote the translation of lab‐scale biomass‐derived adsorbent research toward real‐world CO 2 ‐capture practice.

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Publication Details

Journal
Small Methods
Published
2026-10-06
DOI
https://doi.org/10.1002/smtd.71059
Primary Topic
Carbon Dioxide Capture Technologies
Type
article
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article

Synthetic Methodologies and Structural Engineering of Biomass‐Derived Adsorbents for CO 2 Capture

Xiaolong Tang, Honghong Yi, Fengyu Gao, Yuansong Zhou et al.
Small Methods
Carbon Dioxide Capture Technologies
article

Synthetic Methodologies and Structural Engineering of Biomass‐Derived Adsorbents for CO 2 Capture

Xiaolong Tang, Honghong Yi, Fengyu Gao, Yuansong Zhou, Yaxin Niu, Shunzheng Zhao, Kai Chen, Myong‐Hyok Paek, Yifan Wang, Song‐Chan Pak
article en

Abstract

ABSTRACT Developing sustainable, scalable, low‐cost adsorbents constitutes a core prerequisite to realize practically viable CO 2 capture technologies. Biomass‐derived porous carbons represent attractive candidate sorbents owing to renewable raw feedstocks, tailorable pore architecture, intrinsic hydrophobic character, and moderate regeneration energy demand. This review adopts a methodology‐ and engineering‐driven perspective to examine rational design principles, scalable fabrication routes, and structural engineering strategies of biomass‐derived adsorbents for high‐efficiency CO 2 capture. Material‐level links between manufacturing pathways, physicochemical features, and resultant CO 2 adsorption performance are critically analyzed, covering a broad suite of carbonization, activation, and surface‐modification approaches. Beyond material characteristics, engineering‐relevant aspects are addressed, including pelletization of powdered sorbents, reactor configuration, and practical implementation within PSA (pressure swing adsorption), VSA (vacuum swing adsorption), and TSA (temperature swing adsorption) cyclic adsorption workflows for industrial‐scale deployment. Key existing bottlenecks are outlined, such as lack of standardized synthesis workflows, insufficient anti‐contamination performance, barriers for large‐scale manufacturing, and absence of unified performance‐assessment benchmarks. Corresponding future research avenues are suggested to promote the translation of lab‐scale biomass‐derived adsorbent research toward real‐world CO 2 ‐capture practice.

Small Methods
Pyongyang University of Science and Technology (KP), University of Science and Technology Beijing (CN)
Openalex Percentile: Top 21%
Carbon Dioxide Capture Technologies
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